• 제목/요약/키워드: Axial-flexural strength

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축하중과 반복 횡하중을 받는 콘크리트 충진 각형 탄소섬유 튜브 기둥의 휨거동특성 (The Flexural Behavior of a Square Concrete Filled Carbon Tube Columns under the Constant Axial Force with Reversed Cyclic Lateral Load)

  • 김희철;홍원기;이현주
    • 한국지진공학회논문집
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    • 제8권4호
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    • pp.1-10
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    • 2004
  • 반복 횡하중을 받는 콘트리트 충진 탄소섬유 튜브 기둥의 휨거동을 분석하기 위하여 실험을 수행하였다. 콘크리트 충진 각형 탄소섬유 튜부 기둥의 휨거동에 영향을 미치는 탄소섬유의 와인딩 각도와 두께를 변수로 선택하여 거동을 평가하였다. 콘트리트 충진 탄소섬유 튜브 기둥의 휨거동 보다 정확하게 분석하기 위하여 설정된 두 변수를 동시에 고려하였다. 실험의 결과에서 얻어진 하중-변형 곡선을 이용하여 콘크리트 충진 각형 탄소섬유 튜브 기둥이 휨강도, 변형능력 및 에너지 소산능력을 조사하였다. 또한 기존 구조물과의 비교를 위하여 철근콘크리트 조적벽과 콘크리트를 충진한 각형 탄소섬유 튜브 기둥과의 연성 능력을 비교 평가하였다.

축하중과 반복 횡하중을 받는 콘크리트 충진 원형 탄소섬유 튜브 기둥의 휨거동특성 (The Flexural Behavior of a Circular Concrete Filled Carbon Tube Columns under the Constant Axial Force with Reversed Cyclic Lateral Load)

  • 홍원기;김희철;정진훈
    • 한국지진공학회논문집
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    • 제8권3호
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    • pp.13-22
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    • 2004
  • 반복 횡하중을 받는 콘크리트 충진 탄소섬유 튜브 기둥의 휨 거동을 분석하기 위하여 여섯 개의 시험체에 대한 실험을 수행하였다. 콘크리트 충진 탄소섬유 튜브 기둥의 휨 거동에 영향을 미치는 탄소섬유의 와인딩 각도와 두께를 변수로 선택하여 거동을 평가하였다. 콘크리트 충진 탄소섬유 튜브 기둥의 휨 거동을 보다 정확하게 분석하기 위하여 설정된 두 변수를 동시에 고려하였다. 실험의 결과에서 얻어진 하중-변형 곡선을 이용하여 콘크리트 충진 탄소섬유 튜브 기둥의 휨강도, 변형능력 및 에너지 소산능력을 조사하였다. 또한 기존 구조물과의 비교를 위하여 철근콘크리트 조적벽과 콘크리트를 충진한 탄소섬유 튜브 기둥과의 연성 능력을 비교 평가하였다.

냉간성형강 스터드 합성벽 패널의 보/기둥 해석기법의 전산화 (Programming of Beam/Column Analytical Process for Composite Wall Panels)

  • 이영기
    • 한국강구조학회 논문집
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    • 제17권1호통권74호
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    • pp.45-52
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    • 2005
  • 본 연구의 대상은 두개의 박판 냉간성형 C형강 스터드와 벽체 마감재로 구성되어 있다. 보거동 해석에서는 풍하중을 받고 있는 벽체로 가정하여 패널 축방향에 대하여 횡방향으로 등분포하중이 작용하는 단순지지보로 간주하여 해석한다. 그리고 합성패널의 주요 강도감소인자를 고려한 처짐을 산정한다. 또한 기둥거동에서는 합성패널을 내력벽으로 가정하여 축방향 압축력이 작용하는 기둥으로 간주하여 해석한다. 이 패널은 근사해법인 에너지법을 사용하여 휨 좌굴 하중과 휨-비틂 좌굴 하중을 고려한 공칭 압축강도를 산정할 수 있다. 상기과정은 개발된 전산 프로그램을 이용하여 가용한 실험 결과와 비교하여 검증된다. 보거동에 있어서 실험치가 이론치의 97%의 근사치를 보였고, 기둥거동에서도 이론치에 대한 실험치 압축강도가 유사함을 보였다.

Experimental study on hysteretic properties of SRC columns with high steel ratio

  • Lu, Xilin;Yin, Xiaowei;Jiang, Huanjun
    • Steel and Composite Structures
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    • 제17권3호
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    • pp.287-303
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    • 2014
  • 8 steel reinforced concrete (SRC) columns with the encased steel ratio of 13.12% and 15.04% respectively were tested under the test axial load ratio of 0.33-0.80 and the low-frequency cyclic lateral loading. The cross sectional area of composite columns was $500mm{\times}500mm$. The mechanical properties, failure modes and deformabilities were studied. All the specimens produced flexure failure subject to combined axial force, bending moment and shear. Force-displacement hysteretic curves, strain curves of encased steels and rebars were obtained. The interaction behavior of encased steel and concrete were verified. The hysteretic curves of columns were plump in shapes. Hysteresis loops were almost coincident under the same levels of lateral loading, and bearing capacities did not change much, which indicated that the columns had good energy-dissipation performance and seismic capacity. Based on the equilibrium equation, the suggested practical calculation method could accurately predict the flexural strength of SRC columns with cross-shaped section encased steel. The obtained M-N curves of SRC columns can be used as references for further studies.

탄소섬유를 사용한 철근콘크리트 전단벽의 휨성능 개선에 관한 실험연구 (An Experimental Study on the Improvement of Flexural Capacity of Reinforced Concrete Shear Wall Using Carbon Fibers)

  • 하기주;서수연;신종학;전찬목;김성수;이상근
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 2003년도 봄 학술발표회 논문집
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    • pp.567-572
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    • 2003
  • An experimental work is presented to evaluate the retrofit method for improving the flexural capacity of shear walls. Fives shear wall specimens are designed and retrofitted by using carbon fiber materials such as rod, sheet and plate. Cyclic horizontal loads are applied to the specimens under constant axial load, $0.1f_{ck}A_g$. Test result shows that specimens with additional flexural reinforcement have the increased initial stiffness and deformation capacity. However, the strength is not improved as much as expected. This is because that the flexural reinforcement is pulled out from the foundation at the latter half of cycles. In order to maximize the flexural retrofit, therefore, it is required to study the anchorage behavior of the flexural reinforcement for retrofit.

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Torsional strength model of reinforced concrete members subjected to combined loads

  • Ju, Hyunjin;Lee, Deuckhang;Zhang, Wei;Wang, Lei
    • Computers and Concrete
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    • 제29권 5호
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    • pp.285-301
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    • 2022
  • This study aims at developing a torsional strength model based on a nonlinear analysis method presented in the previous studies. To this end, flexural neutral axis depth of a reinforced concrete section and effective thickness of an idealized thin-walled tube were formulated based on reasonable approximations. In addition, various sectional force components, such as shear, flexure, axial compression, and torsional moment, were considered in estimating torsional strength by addressing a simple and linear strain profile. Existing test results were collected from literature for verifications by comparing with those estimated from the proposed model. On this basis, it can be confirmed that the proposed model can evaluate the torsional strength of RC members subjected to combined loads with a good level of accuracy, and it also well captured inter-related mechanisms between shear, bending moment, axial compression, and torsion.

철근콘크리트 기둥의 전단강도 산정을 위한 스트럿 타이 모델 (Strut-and-Tie Model for Shear Strength of R/C Columns)

  • 이수곤;하태훈;홍성걸
    • 한국콘크리트학회:학술대회논문집
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    • 한국콘크리트학회 1999년도 봄 학술발표회 논문집(I)
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    • pp.591-596
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    • 1999
  • Current design methods as well as the majority of the previous researches for shear strength of the reinforced concrete are based on empirical method. There is a need to propose the rational models based on analytical approach. This paper presents the modified strut-and-tie model for reinforced concrete columns, under axial compression, shear, and flexural moment, considering tensile strength of concrete. Using this model, the strength and the failure mode of R/C columns are investigated, and the proposed models are compared with test data available in the literature.

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고강도 철근 코크리트 휨 부재의 휨.전단거동에 미치는 축방향 구속의 영향 (Effects of Axiral Restraint on flexural and Shear Behavior in High Strength Reinforced Concrete Beams)

  • 양은익;고훈범;김진근;이성태
    • 콘크리트학회지
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    • 제9권6호
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    • pp.207-216
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    • 1997
  • 본연구는 축방향 변형 구속이 고강도 콘크리트 휨부재의 휨 전단거동에 미치는 영향을 조사하기 위한 것으로, 수화열과 건조수축에 기인하는 축방향 변형과 재하에 의한 축방향 변형을 구속한 부재 및 무구속 부재에 대하여 휨파괴와 전단파괴 실험을 실시하였다. 타설 직후부터 축변형을 구속한 실험체의 재하시 강성은 재하전의 구속으로 발생한 관통균열의 영향을 받아 무구속 실험체의 강성보다 낮지만, 재하시의 축변형 구속에 따른 압축구속력의 상승으로 인하여 강성의 크기는 역전되었다 축변형이 완전히 구속된 휨부재의 휨강도는 무구속 부재보다 20%이상 상승하지만 변형능력은 감소하는 것으로 나타났으며, 재하전의 축변형 구속에 의한 관통균열(균열폭 0.1mm 미만)은 부재의 전단내력 및 전단균열 진전 형상에 영향을 미치지 않았다.

Seismic response simulations of bridges considering shear-flexural interaction of columns

  • Zhang, Jian;Xu, Shi-Yu
    • Structural Engineering and Mechanics
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    • 제31권5호
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    • pp.545-566
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    • 2009
  • Bridge columns are subjected to combined actions of axial force, shear force and bending moment during earthquakes, caused by spatially-complex earthquake motions, features of structural configurations and the interaction between input and response characteristics. Combined actions can have significant effects on the force and deformation capacity of RC columns, resulting in unexpected large deformations and extensive damage that in turn influences the performance of bridges as vital components of transportation systems. This paper evaluates the seismic response of three prototype reinforced concrete bridges using comprehensive numerical models that are capable of simulating the complex soil-structural interaction effects and nonlinear behavior of columns. An analytical approach that can capture the shear-flexural interacting behavior is developed to model the realistic nonlinear behavior of RC columns, including the pinching behavior, strength deterioration and stiffness softening due to combined actions of shear force, axial force and bending moment. Seismic response analyses were conducted on the prototype bridges under suites of ground motions. Response quantities of bridges (e.g., drift, acceleration, section force and section moment etc.) are compared and evaluated to identify the effects of vertical motion, structural characteristics and the shear-flexural interaction on seismic demand of bridges.

Shear deformation model for reinforced concrete columns

  • Sezen, Halil
    • Structural Engineering and Mechanics
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    • 제28권1호
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    • pp.39-52
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    • 2008
  • Column shear failures observed during recent earthquakes and experimental data indicate that shear deformations are typically associated with the amount of transverse reinforcement, column aspect ratio, axial load, and a few other parameters. It was shown that in some columns shear displacements can be significantly large, especially after flexural yielding. In this paper, a piecewise linear model is developed to predict an envelope of the cyclic shear response including the shear displacement and corresponding strength predictions at the first shear cracking, peak strength, onset of lateral strength degradation, and loss of axial-load-carrying capacity. Part of the proposed model is developed using the analysis results from the Modified Compression Field Theory (MCFT). The results from the proposed model, which uses simplified equations, are compared with the column test data.